Skip to main navigation menu Skip to main content Skip to site footer

Review Articles

Vol. 13 No. sp5 (2026): Recent Advances in Agriculture

Microbial enhancement of Sesbania sesban (L.) Merr. for efficient heavy metal phytoremediation and soil restoration in crop systems

DOI
https://doi.org/10.14719/pst.9018
Submitted
22 April 2025
Published
18-08-2026

Abstract

This review explores the multifaceted role of Sesbania sesban (L.) Merr. in improving soil health and boosting agricultural productivity. Soil degradation driven by unsustainable practices and nutrient depletion continues to threaten global food security. As a nitrogen-fixing legume, S. sesban offers a sustainable solution by enhancing soil's physical, chemical and biological properties. It improves soil structure, increases nutrient content and stimulates microbial activity. In rice cultivation, the species serves as an effective green manure, significantly enhancing grain yield by improving nitrogen availability and organic matter content. Its symbiotic associations with rhizobia such as Mesorhizobium, Rhizobium and Sinorhizobium facilitate biological nitrogen fixation. Additionally, the plant growth-promoting rhizobacteria (PGPR) associated with Sesbania enhance nutrient uptake, produce phytohormones and suppresses phytopathogens, further supporting plant growth. Beyond its agricultural benefits, S. sesban shows strong phytoremediation potential, effectively removing heavy metals like cadmium, lead and chromium from contaminated soils and wastewater. Its diverse phytochemical profile also contributes to antioxidant, antimicrobial and anti-inflammatory activities, highlighting its medicinal value. With its rich nutritional and therapeutic properties, S. sesban emerges as an asset for sustainable agriculture and holistic environmental management.

References

  1. 1. Ali J, Wang X, Rafique M, Ahmad I, Fiaz S, Munis MF, et al. Phytoremediation of cadmium contaminated soil using Sesbania sesban L. in association with Bacillus anthracis PM21: a biochemical analysis. Sustainability. 2021;13(24):13529. https://doi.org/10.3390/su132413529
  2. 2. Jeschke P. Progress of modern agricultural chemistry and future prospects. Pest Manag Sci. 2016;72(3):433–55. https://doi.org/10.1002/ps.4190
  3. 3. Hartmann M, Six J. Soil structure and microbiome functions in agroecosystems. Nat Rev Earth Environ. 2023;4(1):4–18. https://doi.org/10.1038/s43017-022-00366-w
  4. 4. de Freitas JG, Costa HG, Ferraz FT. Impacts of Lean Six Sigma over organizational sustainability: a survey study. J Clean Prod. 2017;156:262–75. https://doi.org/10.1016/j.jclepro.2017.04.054
  5. 5. Hnini M, Aurag J. Prevalence, diversity and applications potential of nodules endophytic bacteria: a systematic review. Front Microbiol. 2024;15:1386742. https://doi.org/10.3389/fmicb.2024.1386742
  6. 6. Brígido C, Oliveira S, Dardanelli MS, Castro IV, Araújo SS, Borges N, et al. Mediterranean native leguminous plants: a reservoir of endophytic bacteria with potential to enhance chickpea growth under stress conditions. Microorganisms. 2019;7(10):392. https://doi.org/10.3390/microorganisms7100392
  7. 7. Karmakar R, Kundu K, Rajor A. Fuel properties and emission characteristics of biodiesel produced from unused algae grown in India. Pet Sci. 2018;15(2):385–95. https://doi.org/10.1007/s12182-017-0209-7
  8. 8. Kumar D, Kumar K, Roy P, Rabha G. Renewable energy in agriculture: enhancing aquaculture and post-harvest technologies with solar and AI integration. Asian J Res Comput Sci. 2024;17(12):201–19. https://doi.org/10.9734/ajrcos/2024/v17i12539
  9. 9. Bhatt GD. Sesbania-a green manure for soil productivity and crop enhancement. Int J Plant Environ. 2023;9(1):69–72. https://doi.org/10.18811/ijpen.v9i01.11
  10. 10. Talha Bin Yousaf M, Farrakh Nawaz M, Yasin G, Ahmad I, Gul S, Ijaz M, et al. Effect of organic amendments in soil on physiological and biochemical attributes of Vachellia nilotica and Dalbergia sissoo under saline stress. Plants (Basel). 2022;11(2):228. https://doi.org/10.3390/plants11020228
  11. 11. Wang YF, Chen P, Wang FH, Han WX, Qiao M, Dong WX, et al. The ecological clusters of soil organisms drive the ecosystem multifunctionality under long-term fertilization. Environ Int. 2022;161:107133. https://doi.org/10.1016/j.envint.2022.107133
  12. 12. Liu X, Lu X, Zhao W, Yang S, Wang J, Xia H, et al. The rhizosphere effect of native legume Albizzia ibrissin on coastal saline soil nutrient availability, microbial modulation, and aggregate formation. Sci Total Environ. 2022;806:150705. https://doi.org/10.1016/j.scitotenv.2021.150705
  13. 13. Westcott MP, Mikkelsen DS. Effect of green manure on rice soil fertility in the United States. In: Sustainable Agriculture: Green Manure in Rice Farming. 1988. p. 257–74.
  14. 14. Aung-Thwin M, Aung-Thwin M. A history of Myanmar since ancient times: traditions and transformations. London: Reaktion Books; 2013.
  15. 15. Mokhtar FA, Ahmed M, Al Dhanhani AS, Elbehairi SE, Alfaifi MY, Shati AA, et al. Distribution, phytochemical insights, and cytotoxic potential of the Sesbania genus: a comprehensive review of Sesbania grandiflora, Sesbania sesban, and Sesbania cannabina. Pharmaceuticals (Basel). 2025;18(1):64. https://doi.org/10.3390/ph18010064
  16. 16. Capoen W, Oldroyd G, Goormachtig S, Holsters M. Sesbania rostrata: a case study of natural variation in legume nodulation. New Phytol. 2010;186(2):340–5. https://doi.org/10.1111/j.1469-8137.2009.03124.x
  17. 17. Ladha JK, De Bruijn FJ, Malik KA. Introduction: assessing opportunities for nitrogen fixation in rice-a frontier project. Plant Soil. 1997;194:1–10. https://doi.org/10.1023/A:1004264423436
  18. 18. Mani RP, Awanish P, Shambaditya G, Poonam T, Kumudhavalli V, Pratap SA. Phytochemical screening and in-vitro evaluation of antioxidant activity and antimicrobial activity of the leaves of Sesbania sesban (L.) Merr. Free Radic Antioxid. 2011;1(3):66–9. https://doi.org/10.5530/ax.2011.3.9
  19. 19. Naher UA, Choudhury AT, Biswas JC, Panhwar QA, Kennedy IR. Prospects of using leguminous green manuring crop Sesbania rostrata for supplementing fertilizer nitrogen in rice production and control of environmental pollution. J Plant Nutr. 2020;43(2):285–96. https://doi.org/10.1080/01904167.2019.1672734
  20. 20. Ku A, Kadam S, Arif M, Meena R, Verma T. Legumes: an alternative land use option for sustaining soil health. Agric Food E-Newsletter. 2020;1(6).
  21. 21. Singh S, Jat MK, Kumar S. Towards environmental sustainability: integrating RS and GIS for ecology assessment. Eur J Sustain Dev. 2024;13(4):364. https://doi.org/10.14207/ejsd.2024.v13n4p364
  22. 22. Das K, Biswakarma N, Zhiipao R, Ku A, Ghasal PC, Pooniya V. Significance and management of green manures. In: Soil Health. 2020. p. 197–217. https://doi.org/10.1007/978-3-030-44364-1_12
  23. 23. Evans DO, Rotar PP. Sesbania in agriculture. Boca Raton: CRC Press; 2020. https://doi.org/10.1201/9780429305856
  24. 24. Parrotta JA. The role of plantation forests in rehabilitating degraded tropical ecosystems. Agric Ecosyst Environ. 1992;41(2):115–33. https://doi.org/10.1016/0167-8809(92)90105-K
  25. 25. Alazard D, Becker M. Aeschynomene as green manure for rice. Plant Soil. 1987;101:141–3. https://doi.org/10.1007/BF02371043
  26. 26. Orwa C, Mutua A, Kindt R, Jamnadass R, Anthony S. Agroforestree database: a tree reference and selection guide. Version 4.0. Nairobi: World Agroforestry Centre; 2009.
  27. 27. Gutteridge RC, Mathison GW. Forage tree legumes in tropical agriculture. Shelton HM, editor. Wallingford: CAB International; 1994.
  28. 28. Sileshi GW, Mafongoya PL, Nath AJ. Agroforestry systems for improving nutrient recycling and soil fertility on degraded lands. In: Dagar JC, Gupta SR, Teketay D, editors. Agroforestry for Degraded Landscapes. Vol. 1. Singapore: Springer; 2020. p. 225–53. https://doi.org/10.1007/978-981-15-4136-0_8
  29. 29. Ahmed T, Noman M, Qi Y, Shahid M, Hussain S, Masood HA, et al. Fertilization of microbial composts: a technology for improving stress resilience in plants. Plants (Basel). 2023;12(20):3550. https://doi.org/10.3390/plants12203550
  30. 30. Ku P, Vashistha H, Ku S. Phytochemistry, pharmacological, soil amelioration, PGPR attributes, traditional, modern and future prospects of Sesbania sesban (L.) Merr. J Indian Bot Soc. 2024;104(1):1–12.
  31. 31. Singh K, Gera R, Sharma R, Maithani D, Chandra D, Bhat MA, et al. Mechanism and application of Sesbania root-nodulating bacteria: an alternative for chemical fertilizers and sustainable development. Arch Microbiol. 2021;203(4):1259–70. https://doi.org/10.1007/s00203-020-02137-x
  32. 32. Youseif SH, Abd El-Megeed FH, Khalifa MA, Saleh SA. Symbiotic effectiveness of Rhizobium (Agrobacterium) compared to Ensifer (Sinorhizobium) and Bradyrhizobium genera for soybean inoculation under field conditions. Res J Microbiol. 2014;9(3):151–62. https://doi.org/10.3923/jm.2014.151.162
  33. 33. Hassen AI, Lamprecht SC, Bopape FL. Emergence of β-rhizobia as new root nodulating bacteria in legumes and current status of the legume-rhizobium host specificity dogma. World J Microbiol Biotechnol. 2020;36:1–13. https://doi.org/10.1007/s11274-020-2811-x
  34. 34. Jiang N, Liu W, Li Y, Wu H, Zhang Z, Alexandre G, et al. A chemotaxis receptor modulates nodulation during the Azorhizobium caulinodans-Sesbania rostrata symbiosis. Appl Environ Microbiol. 2016;82(11):3174–84. https://doi.org/10.1128/AEM.00230-16
  35. 35. de Souza Moreira FM, Cruz L, De Faria SM, Martínez-Romero E, de Oliveira Pedrosa F, Pitard RM, et al. Azorhizobium doebereinerae sp. nov., microsymbiont of Sesbania virgata (Caz.) Pers. Syst Appl Microbiol. 2006;29(3):197–206. https://doi.org/10.1016/j.syapm.2005.09.004
  36. 36. Tapia-García EY, Hernández-Trejo V, Guevara-Luna J, Rojas-Rojas FU, Arroyo-Herrera I, Meza-Radilla G, et al. Plant growth-promoting bacteria isolated from wild legume nodules and nodules of Phaseolus vulgaris L. trap plants in central and southern Mexico. Microbiol Res. 2020;239:126522. https://doi.org/10.1016/j.micres.2020.126522
  37. 37. Choudhary S, Singh A, Rani M. Rhizosphere: hotspot of soil-microbes-plant interaction. A Monthly Peer Reviewed Magazine for Agriculture and Allied Sciences. 2022;80(1):1–511.
  38. 38. Hassani MA, Durán P, Hacquard S. Microbial interactions within the plant holobiont. Microbiome. 2018;6:1–7. https://doi.org/10.1186/s40168-018-0445-0
  39. 39. Mathur V, Ulaa D. Microbial metabolites beneficial to plant hosts across ecosystems. Microb Ecol. 2023;86(1):25–48. https://doi.org/10.1007/s00248-022-02073-x
  40. 40. Mahey HK, Sharma K, Singh A, Rampal VK, Kaushik P. Green manuring crop plants: harnessing natural processes to enhance soil health and promote sustainable agricultural practices. 2024. https://doi.org/10.20944/preprints202406.0340.v1
  41. 41. Sharma S, Likhita J, Sharma S, Sharma G, Ku A, Ku R, et al. Plant diversity on post-industrial land: resilience and restoration. In: Biodiversity and Ecosystem Services on Post-Industrial Land. 2024. p. 119–69. https://doi.org/10.1002/9781394187416.ch5
  42. 42. Moorby JM, Fraser MD. New feeds and new feeding systems in intensive and semi-intensive forage-fed ruminant livestock systems. Animal. 2021;15:100297. https://doi.org/10.1016/j.animal.2021.100297
  43. 43. Andreotti F, Mao Z, Jagoret P, Speelman EN, Gary C, Saj S. Exploring management strategies to enhance the provision of ecosystem services in complex smallholder agroforestry systems. Ecol Indic. 2018;94:257–65.https://doi.org/10.1016/j.ecolind.2018.06.048
  44. 44. Ku M, Mitra S, Mazumdar SP, Verma BC, Pramanick B. System productivity, soil carbon and nitrogen sequestration of intensive rice-based cropping systems can be improved through legume crop inclusion with appropriate fertilizer application and crop residues incorporation in the eastern Indo-Gangatic plain. Plant Soil. 2023;491:1–22
  45. 45. Das B, Kandpal BK, Devi HL. Cover crops for orchard soil management. In: Cover Crops and Sustainable Agriculture. Boca Raton: CRC Press; 2021. p. 147–68. https://doi.org/10.1201/9781003187301-10
  46. 46. de-Bashan L, Giraldo JD, Cruz-Barrera M, Schoebitz M. Enhancing the survival rate and effectiveness of plant growth-promoting bacteria through bioencapsulation techniques. Biol Fertil Soils. 2024;60:1–14. https://doi.org/10.1007/s00374-024-01870-5
  47. 47. Khatoon Z, Huang S, Farooq MA, Santoyo G, Rafique M, Javed S, et al. Role of plant growth-promoting bacteria (PGPB) in abiotic stress management. In: Mitigation of Plant Abiotic Stress by Microorganisms. 2022. p. 257–72. https://doi.org/10.1016/B978-0-323-90568-8.00012-2
  48. 48. Wahab A, Bibi H, Batool F, Muhammad M, Ullah S, Zaman W, et al. Plant growth-promoting rhizobacteria biochemical pathways and their environmental impact: a review of sustainable farming practices. Plant Growth Regul. 2024;104(2):637–62.https://doi.org/10.1007/s10725-024-01218-x
  49. 49. Meena M, Swapnil P, Divyanshu K, Ku S, Harish, Tripathi YN, et al. PGPR-mediated induction of systemic resistance and physiochemical alterations in plants against the pathogens: current perspectives. J Basic Microbiol. 2020;60(10):828–61. https://doi.org/10.1002/jobm.202000370
  50. 50. Huang XF, Chaparro JM, Reardon KF, Zhang R, Shen Q, Vivanco JM, et al. Rhizosphere interactions: root exudates, microbes, and microbial communities. Botany. 2014;92(4):267–75. https://doi.org/10.1139/cjb-2013-0225
  51. 51. Schade-Poole K, Möller G. Impact and mitigation of nutrient pollution and overland water flow change on the Florida Everglades, USA. Sustainability. 2016;8(9):940. https://doi.org/10.3390/su8090940
  52. 52. Vessey JK. Plant growth promoting rhizobacteria as biofertilizers. Plant Soil. 2003;255(2):571–86. https://doi.org/10.1023/A:1026037216893
  53. 53. Sridevi M, Mallaiah KV. Production of indole-3-acetic acid by Rhizobium isolates from Sesbania species. Afr J Microbiol Res. 2007;1(7):125–8.
  54. 54. Basu A, Prasad P, Das SN, Kalam S, Sayyed RZ, Reddy MS, et al. Plant growth promoting rhizobacteria (PGPR) as green bioinoculants: recent developments, constraints, and prospects. Sustainability. 2021;13(3):1140. https://doi.org/10.3390/su13031140
  55. 55. Sharma S, Singh P, Singh Y. Soil enzymatic activity, bacterial diversity and organic carbon pool in response to residue management and intensive tillage in rice-wheat cropping. J Soil Sci Plant Nutr. 2025;25:1–23. https://doi.org/10.1007/s42729-025-02371-6
  56. 56. Lal R. Soil organic matter and water retention. Agron J. 2020;112(5):3265–77. https://doi.org/10.1002/agj2.20282
  57. 57. Bedanie YD. Combining rainwater harvesting and agroforestry system for enhancing crop yield and soil nutrients: a holistic approach towards improved small-holder farming. 2024.
  58. 58. Bashan Y, de-Bashan LE. Inoculant preparation and formulations for Azospirillum spp. In: Cassán F, Okon Y, Creus C, editors. Handbook for Azospirillum: Technical Issues and Protocols. Cham: Springer International Publishing; 2015. p. 469–85. https://doi.org/10.1007/978-3-319-06542-7_26
  59. 59. Yoneyama T, Terakado-Tonooka J, Minamisawa K. Exploration of bacterial N2-fixation systems in association with soil-grown sugarcane, sweet potato, and paddy rice: a review and synthesis. Soil Sci Plant Nutr. 2017;63(6):578–90. https://doi.org/10.1080/00380768.2017.1407625
  60. 60. Zhang Y, Li Y, Hassan MJ, Li Z, Peng Y. Indole-3-acetic acid improves drought tolerance of white clover via activating auxin, abscisic acid and jasmonic acid related genes and inhibiting senescence genes. BMC Plant Biol. 2020;20:150. https://doi.org/10.1186/s12870-020-02354-y
  61. 61. Fatima P, Mishra A, Om H, Saha B, Ku P. Free living nitrogen fixation and their response to agricultural crops. In: Biofertilizers and Biopesticides in Sustainable Agriculture. Oakville: Apple Academic Press; 2019. p. 173–200. https://doi.org/10.1201/9780429059384-9
  62. 62. Bunma S, Balslev H. A review of the economic botany of Sesbania (Leguminosae). Bot Rev. 2019;85:185–251. https://doi.org/10.1007/s12229-019-09205-y
  63. 63. Bhatt P, Bhatt K, Huang Y, Lin Z, Chen S. Esterase is a powerful tool for the biodegradation of pyrethroid insecticides. Chemosphere. 2020;244:125507. https://doi.org/10.1016/j.chemosphere.2019.125507
  64. 64. Ali J, Ali F, Ahmad I, Rafique M, Munis MF, Hassan SW, et al. Mechanistic elucidation of germination potential and growth of Sesbania sesban seedlings with Bacillus anthracis PM21 under heavy metals stress: an in vitro study. Ecotoxicol Environ Saf. 2021;208:111769. https://doi.org/10.1016/j.ecoenv.2020.111769
  65. 65. Ghosh M, Singh SP. A review on phytoremediation of heavy metals and utilization of its by-products. Asian J Energy Environ. 2005;6(4):214–31.
  66. 66. Ali H, Khan E. Trophic transfer, bioaccumulation, and biomagnification of non-essential hazardous heavy metals and metalloids in food chains/webs-concepts and implications for wildlife and human health. Hum Ecol Risk Assess. 2019;25(6):1353–76. https://doi.org/10.1080/10807039.2018.1469398
  67. 67. Wahab A, Muhammad M, Ullah S, Abdi G, Shah GM, Zaman W, et al. Agriculture and environmental management through nanotechnology: eco-friendly nanomaterial synthesis for soil-plant systems, food safety, and sustainability. Sci Total Environ. 2024;923:171862. https://doi.org/10.1016/j.scitotenv.2024.171862
  68. 68. Mahar A, Ali A, Lahori AH, Wahid F, Li R, Azeem M, et al. Promising technologies for Cd-contaminated soils: drawbacks and possibilities. In: Environment, Climate, Plant and Vegetation Growth. 2020. p. 63–91. https://doi.org/10.1007/978-3-030-49732-3_3
  69. 69. Rizwan M, Ali S, Adrees M, Ibrahim M, Tsang DCW, Zia-ur-Rehman M, et al. A critical review on effects, tolerance mechanisms and management of cadmium in vegetables. Chemosphere. 2017;182:90–105. https://doi.org/10.1016/j.chemosphere.2017.05.013
  70. 70. Lavanya MB, Viswanath DS, Sivapullaiah PV. Phytoremediation: an eco-friendly approach for remediation of heavy metal-contaminated soils-a comprehensive review. Environ Nanotechnol Monit Manag. 2024;22:100975. https://doi.org/10.1016/j.enmm.2024.100975
  71. 71. Kathiresh M, Suganya PD, Saravanakumar M. Bioactive compounds in Sesbania sesban flower and its antioxidant and antimicrobial activity. J Pharm Res. 2012;5(1):293–390.
  72. 72. Rahman MM, Al Noman MA, Khatun S, Alam R, Shetu MM, Talukder EK, et al. Evaluation of Senna tora (L.) Roxb. leaves as source of bioactive molecules with antioxidant, anti-inflammatory and antibacterial potential. Heliyon. 2023;9(1):e12855. https://doi.org/10.1016/j.heliyon.2023.e12855
  73. 73. Abdelgawad SM, Hetta MH, Ibrahim MA, Fawzy GA, El-Askary HI, Ross SA. Holistic overview of the phytoconstituents and pharmacological activities of Egyptian riverhemp (Sesbania sesban (L.) Merr.): a review. Nat Prod Commun. 2023;18(3):1934578X231160882. https://doi.org/10.1177/1934578X231160882
  74. 74. Kamel EG, El-Emam MA, Mahmoud SS, Fouda FM, Bayaumy FE. Parasitological and biochemical parameters in Schistosoma mansoni-infected mice treated with methanol extract from the plants Chenopodium ambrosioides, Conyza dioscorides and Sesbania sesban. Parasitol Int. 2011;60(4):388–92. https://doi.org/10.1016/j.parint.2011.06.016
  75. 75. Lahdachi FZ, Nassiri L, Ibijbijen J, Mokhtari F. Overview of wild and introduced Acacia trees in Morocco. Eur Sci J. 2015;11(23):1–14.
  76. 76. Sheoran S, Kui P, Ku S, Gir CK, Sheoran S, Jhariya MK, et al. Legumes for improving socio-economic conditions of farmers in rainfed agroecosystem. In: Advances in Legumes for Sustainable Intensification. Cambridge: Academic Press; 2022. p. 679–96. https://doi.org/10.1016/B978-0-323-85797-0.00020-3
  77. 77. Mythili T, Ravindhran R. Phytochemical screening and antimicrobial activity of Sesbania sesban (L.) Merr. Asian J Pharm Clin Res. 2012;5(4):179–82.
  78. 78. Dong L, Hua Y, Gao Z, Wu H, Hou Y, Chu Y, et al. The multiple promoting effects of Suaeda glauca root exudates on the growth of alfalfa under NaCl stress. Plants (Basel). 2024;13(6):752. https://doi.org/10.3390/plants13060752
  79. 79. Tan S, Wang Q, Xu D, Zhang J, Shan Y. Evaluating effects of four controlling methods in bare strips on soil temperature, water, and salt accumulation under film-mulched drip irrigation. Field Crops Res. 2017;214:350–8. https://doi.org/10.1016/j.fcr.2017.09.004
  80. 80. Chen S, Jin Z, Zhang J. The situation and impact factors of soil salinization in different dammed farmlands in the valley area of the Northern Shaanxi Province. J Earth Environ. 2019;11(1):81–9.
  81. 81. Liu T, Cao Y, Zhang Y, Wang R, Xiao H, Wang B, et al. Soil environment and growth adaptation strategies of Amorpha fruticosa as affected by mulching in a moderately saline wasteland. Land Degrad Dev. 2020;31(17):2672–83. https://doi.org/10.1002/ldr.3612
  82. 82. Chen X, Opoku-Kwanowaa Y, Li J, Wu J. Application of organic wastes to sodic saline-alkali soil in Northeast China: effects on soil available nutrients and salt ions. Commun Soil Sci Plant Anal. 2020;51(9):1238–52. https://doi.org/10.1080/00103624.2020.1763394
  83. 83. Rani P, Rose PK, Kidwai MK, Meenakshi. Brassica cea L.: a potential crop for phytoremediation of various heavy metals. In: Heavy Metal Toxicity: Environmental Concerns, Remediation and Opportunities. Singapore: Springer Nature Singapore; 2023. p. 285–311. https://doi.org/10.1007/978-981-99-0397-9_14
  84. 84. Anawar HM, Garcia-Sanchez A, Kul Alam MT, Rahman MM. Phytofiltration of water polluted with arsenic and heavy metals. Int J Environ Pollut. 2008;33(2-3):292–312. https://doi.org/10.1504/IJEP.2008.019400
  85. 85. Liu N, Zhao J, Du J, Hou C, Zhou X, Chen J, et al. Non-phytoremediation and phytoremediation technologies of integrated remediation for water and soil heavy metal pollution: a comprehensive review. Sci Total Environ. 2024;926:174237. https://doi.org/10.1016/j.scitotenv.2024.174237
  86. 86. Riccioli F, Guidi Nissim W, Masi M, Palm E, Mancuso S, Azzarello E. Modeling the ecosystem services related to phytoextraction: carbon sequestration potential using willow and poplar. Appl Sci (Basel). 2020;10(22):8011. https://doi.org/10.3390/app10228011
  87. 87. Mehariya S, Karthikeyan OP, Bast F. Pragmatic approaches for environmental management. In: Strategies and Tools for Pollutant Mitigation: Research Trends in Developing Nations. 2022. p. 199–223.

Downloads

Download data is not yet available.